(19)
(11) EP 2 094 752 B1

(12) EUROPEAN PATENT SPECIFICATION

(45) Mention of the grant of the patent:
18.10.2017 Bulletin 2017/42

(21) Application number: 07869105.2

(22) Date of filing: 11.12.2007
(51) International Patent Classification (IPC): 
C08F 297/04(2006.01)
C08L 53/02(2006.01)
(86) International application number:
PCT/US2007/087063
(87) International publication number:
WO 2008/073932 (19.06.2008 Gazette 2008/25)

(54)

STYRENE BUTADIENE BLOCK COPOLYMERS FOR FILM APPLICATIONS

STYROL-BUTADIEN BLOCKCOPOLYMERE FÜR FILMVERWENDUNGEN

COPOLYMÈRES SÉQUENCÉS STYRÈNE/BUTADIÈNE PERMETTANT DES APPLICATIONS EN TANT QUE FILM


(84) Designated Contracting States:
AT BE BG CH CY CZ DE DK EE ES FI FR GB GR HU IE IS IT LI LT LU LV MC MT NL PL PT RO SE SI SK TR

(30) Priority: 11.12.2006 US 609159

(43) Date of publication of application:
02.09.2009 Bulletin 2009/36

(60) Divisional application:
12169704.9 / 2495269

(73) Proprietor: INEOS Styrolution Group GmbH
60325 Frankfurt (DE)

(72) Inventors:
  • BROWN, John M.
    The Woodlands, TX 77382-1146 (US)
  • SMITH, Michael A.
    Bartlesville, OK 74006 (US)
  • STACY, Nathan E.
    Houston, TX 77070 (US)
  • STOUFFER, Carleton E
    Bartlesville, OK 74006 (US)
  • WILKEY, John D
    Owasso, OK 74055 (US)

(74) Representative: Jacobi, Markus Alexander 
Isenbruck Bösl Hörschler LLP Eastsite One Seckenheimer Landstrasse 4
68163 Mannheim
68163 Mannheim (DE)


(56) References cited: : 
US-A- 4 187 360
US-A- 5 319 033
US-A- 5 910 546
US-A1- 2007 173 605
US-A- 5 130 377
US-A- 5 587 425
US-A1- 2005 187 344
US-B1- 6 265 484
   
       
    Note: Within nine months from the publication of the mention of the grant of the European patent, any person may give notice to the European Patent Office of opposition to the European patent granted. Notice of opposition shall be filed in a written reasoned statement. It shall not be deemed to have been filed until the opposition fee has been paid. (Art. 99(1) European Patent Convention).


    Description

    BACKGROUND OF THE INVENTION



    [0001] The present invention relates generally to the field of block copolymers. More particularly, it concerns mixed tapered block monovinylarene-conjugated diene copolymers useful in shrink film applications, especially in blends with polystyrene.

    [0002] Articles formed from monovinylarene-conjugated diene copolymers, such as styrene-butadiene copolymers, for example K-Resin® (Chevron Phillips Chemical Company LP, The Woodlands, TX), generally have improved physical properties compared to articles formed from general purpose polystyrenes. However, in the case of articles for which heat shrink performance is important, new monovinylarene-conjugated diene copolymers are necessary to provide the shrink performance desired by this growing market. As an example, typical monovinylarene-conjugated diene copolymers possess glass transition temperatures (Tg), which are the primary controller of shrink performance, that are typically in the range of 95°C to 108°C. This relatively high Tg is not favored by the marketplace as a relatively high temperature is required to initiate shrinking.

    [0003] Further, polystyrene is commonly blended with monovinylarene-conjugated diene copolymers for a wide number of reasons including increased film stiffness and decreased costs. Articles formed from blends of polystyrene and monovinylarene-conjugated diene copolymers can also be used in applications where heat shrink performance is important.

    [0004] Therefore, it would be desirable to have monovinylarene-butadiene copolymers with lower Tg and improved heat shrink performance, either alone or in blends with polystyrene.

    SUMMARY OF THE INVENTION



    [0005] The present invention relates to a monovinylarene-conjugated diene block copolymer containing a plurality of monovinylarene-conjugated diene mixed tapered blocks as defined in claim 1, wherein each mixed block contains conjugated diene units and monovinylarene units in a weight ratio of 0.05 to 0.33.

    [0006] In another embodiment, the present invention relates to a composition containing (a) from 50 parts by weight to 95 parts by weight of a monovinylarene-conjugated diene block copolymer comprising a plurality of the said monovinylarene-conjugated diene mixed tapered blocks, wherein each mixed block contains conjugated diene units and monovinylarene units in a weight ratio of 0.05 to 0.33; and (b) from 5 parts by weight to 50 parts by weight of polystyrene; wherein the monovinylarene-conjugated diene block copolymer and the polystyrene total 100 parts by weight.

    [0007] In another embodiment, the present invention relates to a method of shrink-wrapping an object or a group of objects by wrapping the object or the group of objects with a film containing the said composition, to yield a wrapped object or group of objects, and heating the wrapped object or group of objects to a temperature and for a duration sufficient to shrink the film in at least a first direction, to yield a shrink-wrapped object or group of objects.

    [0008] The copolymer and the composition can be used in the production of shrink films.

    DESCRIPTION OF ILLUSTRATIVE EMBODIMENTS



    [0009] The present invention relates to a monovinylarene-conjugated diene block copolymer containing a plurality of monovinylarene-conjugated diene mixed tapered blocks as defined in claim 1, wherein each mixed block contains conjugated diene units and monovinylarene units in a weight ratio of 0.05 to 0.33. The weight ratio can be defined as phm (parts per hundred monomer over all conjugated diene and monovinylarene monomer charged to the polymer during polymerization) conjugated diene units divided by phm monovinylarene units. Quantities of monomers and monomer units expressed herein are in terms of parts per hundred monomer (phm) based on the total weight of monovinylarene monomer and conjugated diene monomer charged during polymerization.

    [0010] The basic starting materials and polymerization conditions for preparing conjugated diene/monovinylarene block copolymers are disclosed in U.S. Pat. Nos. 4,091,053; 4,584,346; 4,704,434; 4,704,435; 5,227,419; 5,545,690; US20070173605; and 6,096,828. US5587425 discloses blends of block copolymers of monovinylarenes and conjugated dienes containing 2 interior tapered blocks.

    [0011] "Conjugated diene," as used herein, refers to an organic compound containing conjugated carbon-carbon double bonds and a total of 4 to 12 carbon atoms, such as 4 to 8 carbon atoms. Exemplary conjugated dienes include, 1,3-butadiene, 2-methyl-1,3-butadiene, 2-ethyl-1,3-butadiene, 2,3-dimethyl-1,3-butadiene, 1,3-pentadiene, 3-butyl-1,3-octadiene, and mixtures thereof. In one embodiment, the conjugated diene can be 1,3-butadiene or isoprene. In a further embodiment, the conjugated diene can be 1,3-butadiene. A unit of a polymer, wherein the unit is derived from polymerization of a conjugate diene monomer, is a "conjugated diene unit."

    [0012] "Monovinylarene," as used herein, refers to an organic compound containing a single carbon-carbon double bond, at least one aromatic moiety, and a total of 8 to 18 carbon atoms, such as 8 to 12 carbon atoms. Exemplary monovinylarenes include, styrene, alpha-methylstyrene, 2-methylstyrene, 3-methylstyrene, 4-methylstyrene, 2-ethylstyrene, 3-ethylstyrene, 4-ethylstyrene, 4-n-propylstyrene, 4-t-butylstyrene, 2,4-dimethylstyrene, 4-cyclohexylstyrene, 4-decylstyrene, 2-ethyl-4-benzylstyrene, 4-(4-phenyl-n-butyl)styrene, 1-vinylnaphthalene, 2-vinylnaphthalene, and mixtures thereof. In one embodiment, the monovinylarene is styrene. A unit of a polymer, wherein the unit is derived from polymerization of a monovinylarene monomer, is a "monovinylarene unit."

    [0013] In the polymer of the present invention, the monovinylarene-conjugated diene mixed tapered blocks contain conjugated diene units and monovinylarene units. The mixed block is "tapered" when both (a) the mole fraction of conjugated diene units in a first section of the block is higher than the mole fraction of conjugated diene units in a second section of the block, wherein the second section of the block is closer to a given end of the block, and (b) that condition (a) is true for all sections of the block, with the proviso that depending on the size of the sections being considered, condition (a) may not be true for all sections at no more than the expected level expected by random chance.

    [0014] In one embodiment, each mixed tapered block contains conjugated diene units and monovinylarene units in a weight ratio of 0.06 to 0.28. In another embodiment, each mixed tapered block contains conjugated diene units and monovinylarene units in a weight ratio of 0.08 to 0.26. In another embodiment, each mixed tapered block contains conjugated diene units and monovinylarene units in a weight ratio of 0.05 to 0.09. While not wishing to be limited by theory, it is believed that having each mixed tapered block contain the specified weight ratios of conjugated diene units and monovinylarene units provides monovinylarene-conjugated diene copolymers possessing a glass transition temperature below 100°C which are suitable for applications requiring heat shrinkability.

    [0015] In one embodiment, the monovinylarene-conjugated diene block copolymer contains at least three monovinylarene-conjugated diene mixed tapered blocks. In a further embodiment, the monovinylarene-conjugated diene block copolymer contains four or five monovinylarene-conjugated diene mixed tapered blocks.

    [0016] In one embodiment, the monovinylarene-conjugated diene block copolymer contains four consecutive monovinylarene-conjugated diene mixed tapered blocks. In a further embodiment, the monovinylarene-conjugated diene block copolymer contains five consecutive monovinylarene-conjugated diene mixed tapered blocks.

    [0017] In addition to the plurality of mixed tapered blocks described above, the monovinylarene-conjugated diene block copolymer can further contain blocks of monovinylarene units, conjugated diene units, random monovinylarene-conjugated diene, stepwise monovinylarene-conjugated diene, mixed monovinylarene-conjugated diene containing more conjugated diene units than a conjugated diene/monovinylarene weight ratio of 0.33, and other monomers, either alone, in copolymeric blocks, or in combination with monovinylarene units, conjugated diene units, or both.

    [0018] The monovinylarene-conjugated diene block copolymer contains a proximal conjugated diene block. In this context, "proximal" refers to a position nearer the terminal end of the block copolymer than the initial end. The proximal conjugated diene block contains from 5 phm conjugated diene units to 50 phm conjugated diene units, relative to the total amount of monovinylarene units and conjugated diene units in the monovinylarene-conjugated diene block copolymer. In another embodiment, the proximal conjugated diene block contains from 10 phm conjugated diene units to 35 phm conjugated diene units. In a further embodiment, the proximal conjugated diene block contains from 11 phm conjugated diene units to 25 phm conjugated diene units. While not wishing to be limited by theory, it is believed that having a proximal conjugated diene block containing the specified amount of conjugated diene units provides impact resistance to the monovinylarene-conjugated diene copolymer and blends thereof.

    [0019] In another embodiment, the monovinylarene-conjugated diene block copolymer further contains a distal monovinylarene block. In this context, "distal" refers to a position nearer the initial end of the block copolymer than the terminal end. In one embodiment, the distal monovinylarene block contains from 10 phm monovinylarene units to 40 phm monovinylarene units, relative to the total amount of monovinylarene units and conjugated diene units in the monovinylarene-conjugated diene block copolymer. In a further embodiment, the distal monovinylarene block contains from 15 phm monovinylarene units to 35 phm monovinylarene units.

    [0020] In one embodiment, the monovinylarene-conjugated diene copolymer is a block copolymer comprising styrene blocks and butadiene blocks (a "styrene-butadiene block copolymer"). Exemplary styrene-butadiene copolymers are commercially available under the name K-Resin® (Chevron Phillips Chemical Company, LP, The Woodlands, TX).

    [0021] The monovinylarene-conjugated diene copolymer can have any proportion of monovinylarene units and conjugated diene units. In one embodiment, the monovinylarene-conjugated diene copolymer has from 50 wt%:50 wt% monovinylarene units:conjugated diene units to 90 wt%:10 wt% monovinylarene units:conjugated diene units. In one embodiment, the monovinylarene-conjugated diene copolymer has from 65 wt%:35 wt% monovinylarene units:conjugated diene units to 85 wt%:15 wt% monovinylarene units:conjugated diene units.

    [0022] The monovinylarene-conjugated diene copolymer can further comprise other monomers known in the art for inclusion in monovinylarene-conjugated diene copolymers.

    [0023] Each block is formed by polymerizing the monomer or mixture of monomers from which the desired units of the block are derived. The polymerization process will be amenable to a lack of change in process parameters between different blocks. The following descriptions of the polymerization process will apply to the formation of all types of blocks in the inventive polymer.

    [0024] The polymerization process can be carried out in a hydrocarbon diluent at any suitable temperature in the range of from -100°C to 150°C, such as from 0°C to 150°C, and at a pressure to maintain the reaction mixture substantially in the liquid phase. In one embodiment, the hydrocarbon diluent can be a linear or cyclic paraffin, or mixtures thereof. Exemplary linear or cyclic paraffins include, pentane, hexane, octane, cyclopentane, cyclohexane, and mixtures thereof. In one embodiment, the paraffin is cyclohexane.

    [0025] The polymerization process can be carried out in the absence of oxygen and water, such as under an inert gas atmosphere.

    [0026] The polymerization process can be performed in the presence of an initiator. In one embodiment, the initiator can be any organomonoalkali metal compound known for use as an initiator. In a further embodiment, the initiator can have the formula RM, wherein R is an alkyl, cycloalkyl, or aryl radical containing 4 to 8 carbon atoms, such as an n-butyl radical, and M is an alkali metal, such as lithium. In a particular embodiment, the initiator is n-butyl lithium.

    [0027] The amount of initiator employed depends upon the desired polymer or block molecular weight.

    [0028] An initiator can be charged to the polymerization process once or more than once. When multiple initiator charges are charged to the polymerization process, a particular initiator compound can be used in one, some, or all initiator charges. The charging of multiple initiator charges to the polymerization process can modify the modality of the final polymer, as will be discussed below.

    [0029] The polymerization process can further involve the use of a randomizer. In one embodiment, the randomizer can be a polar organic compound, such as an ether, a thioether, or a tertiary amine. In another embodiment, the randomizer can be a potassium salt or a sodium salt of an alcohol. The randomizer can be included in the hydrocarbon diluent to improve the effectiveness of the initiator, to randomize at least part of the monovinylarene monomer in a mixed monomer charge, to modify mixing in a mixed monomer charge, or two or more thereof. The inclusion of a randomizer can be of value when forming a mixed monovinylarene-conjugated diene block of the present polymer. Exemplary randomizers include dimethyl ether, diethyl ether, ethyl methyl ether, ethyl propyl ether, di-n-propyl ether, di-n-octyl ether, anisole, dioxane, 1,2-dimethoxyethane, 1,2-diethoxypropane, dibenzyl ether, diphenyl ether, 1,2-dimethoxybenzene, tetramethylene oxide (tetrahydrofuran or THF), potassium tert-amylate (KTA), dimethyl sulfide, diethyl sulfide, di-n-propyl sulfide, di-n-butyl sulfide, methyl ethyl sulfide, dimethylethylamine, tri-n-ethylamine, tri-n-propylamine, tri-n-butylamine, trimethylanine, triethylamine, tetramethylethylenediamine, tetraethylethylenediamine, N,N-di-methylaniline, N-methyl-N-ethylaniline, N-methylmorpholine, and mixtures thereof.

    [0030] In one embodiment, the randomizer is tetrahydrofuran. When employing tetrahydrofuran, the tetrahydrofuran is generally present in an amount in the range of from 0.01 phm to 1.0 phm, such as from 0.02 phm to 1.0 phm.

    [0031] In another embodiment, the randomizer is potassium tert-amylate (KTA). When employing KTA, the KTA is generally present in an amount in the range of from 0.001 phm to 1.0 phm, such as from 0.004 phm to 0.4 phm.

    [0032] When forming a particular block, each monomer charge or monomer mixture charge can be polymerized under solution polymerization conditions such that the polymerization of each monomer charge or monomer mixture charge, to form the particular block, is complete before charging a subsequent charge. "Charging," as used herein, refers to the introduction of a compound to a reaction zone, such as the interior of a reactor vessel.

    [0033] Though not to be bound by theory, if an initiator is included in a charge, a block will typically form either de novo or by addition to the end of an unterminated, previously-formed, block. Further not to be bound by theory, if an initiator is not included in a charge, a block will typically only form by addition to the end of an unterminated, previously-formed, block.

    [0034] A coupling agent can be added after polymerization is complete. Suitable coupling agents include, di- or multivinylarene compounds; di- or multiepoxides; di- or multialkoxysilanes; di- or multiisocyanates; di- or multiimines; di- or multialdehydes; di- or multiketones; alkoxytin compounds; di- or multihalides, such as silicon halides and halosilanes; mono-, di-, or multianhydrides; di- or multiesters, such as the esters of monoalcohols with polycarboxylic acids; diesters which are esters of monohydric alcohols with dicarboxylic acids; diesters which are esters of monobasic acids with polyalcohols such as glycerol; and mixtures of two or more such compounds.

    [0035] Useful multifunctional coupling agents include, epoxidized vegetable oils such as epoxidized soybean oil, epoxidized linseed oil, and mixtures thereof. In one embodiment, the coupling agent is epoxidized soybean oil. Epoxidized vegetable oils are commercially available under the trademark Vikoflex® from Arkema Inc. (Philadelphia, PA).

    [0036] If coupling is to be performed, any effective amount of the coupling agent can be employed. In one embodiment, a stoichiometric amount of the coupling agent relative to active polymer alkali metal tends to promote maximum coupling. However, more or less than stoichiometric amounts can be used for varying coupling efficiency where desired for particular products.

    [0037] Following completion of the coupling reaction, if any, the polymerization reaction mixture can be treated with a terminating agent such as water, carbon dioxide, alcohol, phenols, linear saturated aliphatic mono-dicarboxylic acids, or mixtures thereof, to remove alkali metal from the block copolymer or for color control.

    [0038] After termination, if any, the polymer cement (polymer in polymerization solvent) usually contains 10 to 40 weight percent solids, more usually 20 to 35 weight percent solids. The polymer cement can be flashed to evaporate a portion of the solvent so as to increase the solids content to a concentration of 50 to 99 weight percent solids, followed by vacuum oven drying, a devolatilizing extruder, a wiped film evaporator, or other methods of removing the remaining solvent.

    [0039] The block copolymer can be recovered and worked into a desired shape, such as by sheet extrusion, cast film extrusion, blown film, or injection molding. The block copolymer can also contain additives such as antioxidants, antiblocking agents, release agents, fillers, extenders, and dyes.

    [0040] In an embodiment, the monovinylarene-conjugated diene copolymer further comprises a rubber modified polystyrene. An exemplary rubber modified polystyrene is a high-impact polystyrene (HIPS). A rubber modified polystyrene is a composition comprising any graft copolymer of styrene and rubber. By "graft copolymer" is meant polystyrene produced by polymerizing styrene in the presence of an unsaturated rubber wherein some amount of free radicals react with the rubber producing polystyrene chains that are covalently bonded to the rubber. During this process the rubber, grafted with polystyrene, becomes dispersed throughout the polystyrene in the form of discrete domains. In one embodiment the unsaturated rubber is polybutadiene. A suitable high-impact polystyrene is available from Chevron Phillips Chemical Company LP (The Woodlands, TX) with the designation EA8100. Generally, a composition further comprising a rubber modified polystyrene can contain from 0.1 phm rubber modified polystyrene to 5 phm rubber modified polystyrene, such as 2 phm rubber modified polystyrene The rubber modified polystyrene may be used in some embodiments as an antiblocking agent.

    [0041] In the present invention, the monovinylarene-conjugated diene block copolymer can be monomodal, that is, a population of copolymer molecules can have one peak in a histogram of the population's molecular weight distribution, or it can be polymodal, that is, have two or more peaks in a histogram of the copolymer molecules' population's molecular weight distribution. Though not to be bound by theory, the charging of multiple initiator charges will tend to yield polymer chains of different lengths and thus will tend to have different molecular weights. In addition, and again not to be bound by theory, use of a coupling agent will tend to yield coupled chains formed by coupling different numbers of chains of the same or different lengths, and thus the coupled chains will tend to have different molecular weights.

    [0042] In the present invention, the monovinylarene-conjugated diene copolymer can be coupled or uncoupled, as described above.

    [0043] In specific polymerization processes, typical initiator, monomer and monomer mixture charge sequences include charge orders selected from the group consisting of i-C-C-i-C-B-CA, i-C-C-C-i-C-C-B-CA, i-A-C-C-C-C-B-CA, i-A-i-C-C-C-C-B-CA, i-A-i-C-C-C-C-CA, i-A-i-C-C-C-C-C-B-CA, and i-A-C-C-i-C-C-B-CA, wherein i is a polymerization initiator charge, A is a monovinylarene charge, B is a conjugated diene charge, C is a monovinylarene and conjugated diene charge, and CA is a coupling agent. In a further embodiment, charge order is selected from the group consisting of i-C-C-i-C-B-CA, i-C-C-C-i-C-C-B-CA, i-A-C-C-C-C-B-CA, i-A-i-C-C-C-C-B-CA, i-A-i-C-C-C-C-C-B-CA, and i-A-C-C-i-C-C-B-CA.

    [0044] In one embodiment, the conjugated diene-monovinylarene block copolymer can be formed into a film or a sheet. A typical extruded sheet can have a thickness of 10 mils. In a further embodiment, a sheet can be stretched in at least one direction at a temperature from 50°C to 100°C, such as 90°C to form a film having a thickness of 0.5 mil to 3 mil, such as 2 mil. In this embodiment, the film formed from the conjugated diene-monovinylarene block copolymer may have a shrinkage in at least one direction of at least 40% at 100°C. In one embodiment, the film formed from the conjugated diene-monovinylarene block copolymer may have a shrinkage in at least one direction of at least 60% at 100°C, such as at least 70% at 100°C, such as from 71% to 76% at 100°C. Also, the film formed from the conjugated diene-monovinylarene block copolymer may have a haze of less than 10%. In one embodiment, the film formed from the conjugated diene-monovinylarene block copolymer may have a haze of less than 6%. Also, the film formed from the conjugated diene-monovinylarene block copolymer may have a natural shrinkage of less than 10% after 7 days. In one embodiment, the film formed from the conjugated diene-monovinylarene block copolymer may have a natural shrinkage of less than 7% after 7 days.

    [0045] In another embodiment, the present invention relates to a composition containing (a) from 50 parts by weight to 95 parts by weight of a monovinylarene-conjugated diene block copolymer comprising a plurality of monovinylarene-conjugated diene mixed tapered blocks as defined in claim 7, wherein each mixed block contains conjugated diene and monovinylarene in a weight ratio of 0.05 to 0.33; and (b) from 5 parts by weight to 50 parts by weight of polystyrene; wherein the monovinylarene-conjugated diene block copolymer and the polystyrene total 100 parts by weight.

    [0046] The block copolymer can be as described above. As used herein, "polystyrene" or "PS" refers to any homopolymer containing styrene units and does not include HIPS as described above. Suitable polystyrenes are available from Chevron Phillips Chemical Company LP (The Woodlands, TX) with the designations D4049, EA3400, EA3710, MC3200, and MC3600.

    [0047] In one embodiment, the composition contains from 70 parts by weight to 95 parts by weight of the monovinylarene-conjugated diene block copolymer and from 5 parts by weight to 30 parts by weight of polystyrene.

    [0048] In one embodiment, the composition may further comprise a rubber modified polystyrene as previously described. The rubber modified polystyrene may be used in some embodiments as an antiblocking agent.

    [0049] In one embodiment, the composition can be formed into a film or a sheet. A typical extruded sheet can have a thickness of 10 mils. In a further embodiment, a sheet can be stretched in at least one direction at a temperature from 50°C to 100°C, such as 90°C to form a film having a thickness of 0.5 mil to 3 mil, such as 2 mil. In this embodiment, the film formed from the composition may have a shrinkage in at least one direction of at least 40% at 100°C. Also, the film formed from the composition may have a haze of less than 10%. Also, the film formed from the composition may have a natural shrinkage of less than 5% after 7 days.

    [0050] The film or sheet can be produced by any technique known in the art of monolayer and coextrusion. Such techniques include, cast film extrusion, blown film extrusion, and sheet extrusion; either as a single extruded layer or a plurality of coextruded layers. Generally, the film can be produced by cast film or sheet extrusion techniques. For example, the film can be produced using conventional extrusion techniques such as a coextruded cast film. In coextrusion, two or more polymers are simultaneously extruded through one die. Two or more extruders are used simultaneously to feed the die. In this process, various polymer melts are introduced into the die under conditions of laminar flow such that there is no intermixing, but bonding occurs at the interface between the film layers.

    [0051] In a cast film extrusion process, molten material from an extruder flows through a flat die directly onto a casting roll, which cools the molten material. Generally, cast film processes produce films with an average thickness of 10 mils or less, however the process can be used to produce films thicker than 20 mils. In one embodiment, orientation can be introduced into the film prior to winding on the final drum. In another embodiment, the film may be wound onto mill roll and orientation can be introduced into the film by passing the film through a separate orientation process line.

    [0052] In a sheet extrusion process, molten material from an extruder flows through a flat die to form a sheet which is passed through a chill roll stack. Chill roll stacks typically consist of at least three cooled rolls. Typically the sheet process differs from the cast film process in that the sheet produced has a thickness of between 5 mils and 20 mils. This thickness allows the resultant sheet to be oriented in the transverse as well as machine direction.

    [0053] In a blown film extrusion process, while the extrusion process upstream of the die is similar to the cast process, the die and downstream are different. In the blown film process, the die is annular (circular) and typically the polymer exits in an upward direction. This produces a cylindrical tube, which can then be closed (collapsed) at the top between nip rolls, resulting in a flattened tube. Subsequently, the tube of film can be reheated, reinflated, and stretched to introduce orientation in the transverse and machine directions. This tube can then be slit and then be wound into one or more rolls of film. This is often referred to as a blown film double bubble process.

    [0054] Generally, the film has a machine direction, which is parallel to the direction in which the polymer exits the die, and a transverse direction which is perpendicular to the machine direction.

    [0055] Preparation of shrink films requires the introduction of orientation into the polymer film by any technique known in the art. While not wanting to be bound by any one theory, it is widely believed that the orientation process introduces and fixes stress into the film which is then recovered as shrinkage when the film is later heated. Orientation can be introduced in a step or series of steps immediately after the initial film or sheet production (i.e. in-line) or as a separate post-processing step or steps (i.e. off-line) that may occur at a later date. The orientation can be introduced in at least one direction. One technique to introduce orientation is the use of a tentering frame, generally used to introduce orientation in the transverse direction, often referred to as a TDO machine. The tentering frame achieves this by pulling the film in the transverse direction using a series of clips mounted on a chain that grab the edges of the film. The chain clips stretch the film in the transverse direction, due to the chain riding on divergent chain guides, as the film is heated within a long oven. An alternative orientation technique is the use of a series of temperature controlled rolls, generally used to introduce orientation in the machine direction, often referred to as an MDO machine. The series of rolls introduce orientation by having one or more middle pairs of these rollers turning at different speeds. The film stretches in the machine direction in the gap between the roller pairs. In some instances it may be desirable to introduce orientation in both directions. Both techniques can be used in combination to produce a film oriented in both the machine and transverse directions. The production of oriented film via cast film extrusion or sheet extrusion techniques, along with a TDO machine and, optionally, an MDO machine, is often referred to as a cast and tenter process.

    [0056] In another embodiment, a shrink label of the present invention can be formed from a film containing (a) from 50 parts by weight to 95 parts by weight of a monovinylarene-conjugated diene block copolymer comprising a plurality of monovinylarene-conjugated diene mixed blocks, wherein each mixed block contains conjugated diene units and monovinylarene units in a weight ratio of 0.05 to 0.33; and optionally (b) from 5 parts by weight to 50 parts by weight of polystyrene; wherein the monovinylarene-conjugated diene block copolymer and the polystyrene total 100 parts by weight, to yield a shrink label.

    [0057] A shrink label is a shrink film having a length, a width, and a thickness, wherein the length and the width are each at least an order of magnitude greater than the thickness and at least one of the length or the width will decrease upon exposure to heat. The term "shrink label" encompasses such a film portion before, during, or after heat exposure and decrease in the length or the width. Before heat exposure, the shrink label can be referred to as an "unshrunk shrink label" while also being a shrink label according to the definition given above. The length and width of the shrink label are not critical; the thickness can be any appropriate thickness, such as from 0.1 mil to 10 mil.

    [0058] The shrink label can have a cylindrical structure. When the shrink label has a cylindrical structure, it can be termed a shrink sleeve.

    [0059] Any geometry of the shrink label, in terms of size, shape, number of sides, radius, is contemplated, and will be matter of routine experimentation for the skilled artisan having the benefit of the present disclosure.

    [0060] Generally, a shrink label oriented in the TD can be called a "sleeve label". In one embodiment, the sleeve label can be printed and slit in the MD direction. Solvent bonding can then be used to form a seam parallel to the TD and make a sleeve. The sleeve can be applied from the top of a container, resulting in the TD direction of the film around the circumference of the container. The materials making up a sleeve label can be chosen to have a desirable degree of shrinkage.

    [0061] Generally, a shrink label oriented in the MD can be called a "roll fed" label. A roll fed label can be fed in the machine direction from a roll into a labeling machine. The labeling machine can wrap the roll fed label around a container, cut the roll fed label, and solvent bond the roll fed label, with the MD direction of the film around the circumference of the container.

    [0062] In another embodiment, the present invention relates to a method of shrink-wrapping an object or a group of objects by wrapping the object or the group of objects with a film containing (a) from 50 parts by weight to 95 parts by weight of a monovinylarene-conjugated diene block copolymer comprising a plurality of monovinylarene-conjugated diene mixed tapered blocks, wherein each mixed tapered block contains conjugated diene and monovinylarene in a weight ratio of 0.05 to 0.33; and optionally (b) from 5 parts by weight to 50 parts by weight of polystyrene; wherein the monovinylarene-conjugated diene block copolymer and the polystyrene total 100 parts by weight, to yield a wrapped object or group of objects, and heating the wrapped object or group of objects to a temperature and for a duration to shrink the film in at least a first direction, to yield a shrink-wrapped object or group of objects.

    [0063] The film can be as described above. In one embodiment, the film has a higher shrink in a first direction than in a second direction. If oriented in one direction, the first direction can be the machine direction or the transverse direction. The second direction would then be the other of the machine direction or the transverse direction.

    [0064] In another embodiment, the film has a similar shrink in both a first direction and a second direction. ("similar shrink" in this embodiment means the ratio of the shrink in the first direction to the shrink in the second direction is from 0.5 to 2).

    [0065] Any object or group of objects for which wrapping is desired can be used in this method. In one embodiment, the object or group of objects is a group of bottles, cans, or other discrete objects, optionally contained in a tray.

    [0066] In the wrapping step, the film can be disposed in a suitable manner around the object or group of objects. For example, if the object or group of objects define a cuboid, the film can be disposed around the object or group of objects such that it contacts at least two pairs of parallel sides, such as two or three pairs of parallel sides. The direction of disposing can be chosen as a routine matter for the skilled artisan having the benefit of the present disclosure, depending on the objects, the structure of the film, and the desired structure of the shrink-wrapped object or group of objects.

    [0067] The result of the wrapping step is a wrapped object or group of objects.

    [0068] After wrapping, the wrapped object or group of objects can be heated to a temperature and for a duration to shrink the film. The temperature and the duration are a matter of routine experimentation for the skilled artisan having the benefit of the present disclosure. Shrinking will typically proceed until the film has shrunk in at least the first direction and, if the film has similar shrink in the second direction, also the second direction, to contact the object or group of objects.

    [0069] The following examples are included to demonstrate preferred embodiments of the invention. It should be appreciated by those of skill in the art that the techniques disclosed in the examples which follow represent techniques discovered by the inventor to function well in the practice of the invention, and thus can be considered to constitute preferred modes for its practice.

    EXAMPLES


    Materials:



    [0070] Cyclohexane was dried over activated alumina and stored under nitrogen. n-Butyl lithium initiator ("Li") was received at 15 wt% in cyclohexane and was diluted with cyclohexane to 2 wt%. Tetrahydrofuran (THF) was stored over activated alumina under nitrogen. Styrene and butadiene were purified over activated alumina. Epoxidized soybean oil was used as received. Quantities of reagents are usually expressed in parts per hundred monomer (phm) based on the total weight of monovinylarene and conjugated diene employed.

    Example 1


    Polymer recipes A - X



    [0071] The polymerizations were performed in a 2-gallon stainless steel reactor. The reactor was equipped with a jacket for temperature control, a double auger impeller, and baffles. Generally, each block is formed by polymerizing the monomer or mixture of monomers from which the desired units of the block are derived.

    [0072] Cyclohexane is initially charged to the reactor, followed by THF (0.10 PHM). The temperature is adjusted to 60°C and initiator is charged, followed by the first charge of monomer. After polymerization is complete a sample of the first polymerization block is coagulated in nitrogen-sparged isopropanol, filtered, dried, and analyzed by Gel Permeation Chromatography. The polymerization is continued by sequential charges of monomers and/or initiators as desired. The coupling agent is charged and reacted at 100°C for 15 minutes. The polymer was recovered by solvent evaporation and pelletized with a single screw extruder.

    Polymer recipes Y - OO



    [0073] Styrene/butadiene mixed block copolymers Y-OO were prepared employing sequential solution polymerization under nitrogen. Polymerization runs were carried out in a stirred, 100 gallon carbon steel reactor with internal cooling coils and employed essentially anhydrous reactants and conditions.

    [0074] Cyclohexane was initially charged to the reactor, followed by THF. The temperature was adjusted to 60°C and initiator was charged, followed by the first charge. Lines were flushed with 0.5 kg cyclohexane following each charge. Polymerization was allowed to continue to completion after each monomer or monomer mixture charge. Polymerization temperature ranged from 38°C to 120°C and pressure ranged from 2 psig to 60 psig. Total monomer weight was 90 kg. Following completion of the sequential polymerizations, a coupling agent was charged to the reactor. The coupling agent was reacted at 100°C for 15 minutes. After completion of coupling, the reaction was terminated by adding CO2 and 0.2 phm water.

    [0075] The sequence of charges and a partial characterization of each polymer are shown in Table 1. All quantities of charged materials are given in phm. Blank cells indicate no material was charged or a value was not determined. The abbreviations in the table are as follows: THF, tetrahydrofuran; i, n-butyl lithium initiator; S, styrene; B, butadiene; CA, coupling agent (Vikoflex 7170, epoxidized soybean oil, Arkema, Inc.).




    Example 2


    A) Shrink films A - S:



    [0076] In Table 2, pelletized products were extruded into sheets 8" wide and 10 mil thick on a Davis Standard 150S extruder fitted with a Killion sheet line. Plaques of 12 cm x 12 cm were die cut from the 10-mil sheet samples to serve as film samples. Using a biaxial orienting machine manufactured by Bruckner Maschinenbau, films were normally uniaxially stretched in the direction transverse to the extrusion direction at the lowest temperature necessary to achieve a 5:1 extension. This temperature appears in Table 2 in the column labeled "StretchT". Sheet samples were stretched at a constant rate of 3 cm/sec.

    B) Shrink films Y - KK:



    [0077] In Table 2, pelletized products were extruded into sheets 10" wide and 10 mil thick on a Killion extruder and sheet line. Mill rolls of the sheet were then fed to an Marshall & Williams Plastics tentoring frame and uniaxially stretched in the transverse direction at the lowest temperature that allowed an 5:1 extension.

    [0078] Representative physical properties of the shrink films are given in Table 2, including haze, transverse direction (TD) shrinkage at the temperature given (°C), machine direction (MD) shrinkage at the temperature given (°C), and natural shrinkage. Blank cells indicate a value was not determined. Heat shrinkage was determined by immersion of oriented films in an oil bath at a given temperature for 30 seconds, whereafter the heat shrinkage was calculated. Natural Shrinkage was determined by placing the Oriented films in an oven set to 40°C for the number of days given. The haze was measured as %haze using a BYK-Gardner USA (Columbia, MD) Haze-Gard® Plus instrument. Measurements were made in accordance with operating instructions of this instrument.


    Example 3


    Shrink films containing Polymer and Polystyrene



    [0079] Shrink films (2 mil nominal thickness) were made from the polymers I-OO, blended with 0 wt% or 20 wt% polystyrene and 0 wt% or 2 wt% high impact polystyrene (HIPS) as an antiblocking agent. The polystyrene used was EA3710 and the HIPS used was EA8100, both available from Chevron Phillips Chemical Company LP, The Woodlands, TX. The shrink films I - X were prepared and tested using the same methods as used for the unblended resins described in Example 2A). The shrink films DD - OO were prepared and tested using the same methods as used for the unblended resins described in Example 2B).



    [0080] All of the compositions disclosed and claimed herein can be made and executed without undue experimentation in light of the present disclosure.


    Claims

    1. A monovinylarene-conjugated diene block copolymer, comprising:

    a proximal conjugated diene block comprising from 5 phm conjugated diene units to 50 phm conjugated diene units; and a plurality of monovinylarene-conjugated diene mixed tapered blocks,

    wherein each monovinylarene-conjugated diene mixed tapered block contains conjugated diene units and monovinylarene units with a weight ratio of conjugated diene units to monovinylarene units of 0.05 to 0.33;

    wherein the block copolymer is formed through a charge order selected from the group consisting of i-C-C-i-C-B-CA, i-C-C-C-i-CC-B-CA, i-A-C-C-C-C-B-CA, i-A-i-C-C-C-C-B-CA, i-A-i-C-C-C-C-C-B-CA, and i-A-C-C-i-C-C-B-CA, wherein i is a polymerization initiator charge, A is a monovinylarene charge, B is a conjugated diene charge, C is a monovinylarene and conjugated diene charge, and CA is a coupling agent;

    and wherein the mixed block is "tapered" when both (a) the mole fraction of conjugated diene units in a first section of the block is higher than the mole fraction of conjugated diene units in a second section of the block, wherein the second section of the block is closer to a given end of the block, and (b) that condition (a) is true for all sections of the block, with the proviso that, depending on the size of the sections being considered, condition (a) is not true for all sections of the block at no more than the expected level by random chance.


     
    2. The monovinylarene-conjugated diene block copolymer of claim 1, wherein the weight ratio of conjugated diene units to monovinylarene units within each mixed tapered block is 0.06 to 0.28, in particular 0.08 to 0.26.
     
    3. The monovinylarene-conjugated diene block copolymer of claim 1, wherein the block copolymer comprises at least three monovinylarene-conjugated diene mixed tapered blocks, in particular at least four consecutive monovinylarene-conjugated diene mixed tapered blocks.
     
    4. The monovinylarene-conjugated diene block copolymer of claim 1, further comprising a distal monovinylarene block containing from 10 phm monovinylarene units to 40 phm monovinylarene units.
     
    5. The monovinylarene-conjugated diene block copolymer of claim 1, in the form of a film having a thickness of 0.5 mil to 3 mil and having been oriented at 90°C, wherein the block copolymer has a shrinkage of at least 40% at 100°C and a natural shrinkage of less than 10% after 7 days; or in the form of a film having a thickness of 0.5 mil to 3 mil and having been oriented at 90°C, wherein the block copolymer has a haze of less than 10%.
     
    6. The monovinylarene-conjugated diene block copolymer of claim 1, further comprising a rubber modified polystyrene.
     
    7. A composition, comprising

    (a) from 50 parts by weight to 95 parts by weight of a monovinylarene-conjugated diene block copolymer comprising a proximal conjugated diene block containing from 5 phm conjugated diene units to 50 phm conjugated diene units; and a plurality of monovinylarene-conjugated diene mixed tapered blocks, wherein each mixed tapered block contains conjugated diene units and monovinylarene units with a weight ratio of conjugated diene units to monovinylarene units of 0.05 to 0.33; and

    (b) from 5 parts by weight to 50 parts by weight of a polystyrene; wherein the monovinylarene-conjugated diene block copolymer and the polystyrene total 100 parts by weight

    wherein the block copolymer is formed through a charge order selected from the group consisting of i-C-C-i-C-B-CA, i-C-C-C-i-CC- B-CA, i-A-C-C-C-C-B-CA, i-A-i-C-C-C-C-B-CA, i-A-i-C-C-CC- C-B-CA, and i-A-C-C-i-C-C-B-CA, wherein i is a polymerization initiator charge, A is a monovinylarene charge, B is a conjugated diene charge, C is a monovinylarene and conjugated diene charge, and CA is a coupling agent;
    and wherein the mixed block is "tapered" when both (a) the mole fraction of conjugated diene units in a first section of the block is higher than the mole fraction of conjugated diene units in a second section of the block, wherein the second section of the block is closer to a given end of the block, and (b) that condition (a) is true for all sections of the block, with the proviso that, depending on the size of the sections being considered, condition (a) is not true for all sections of the block at no more than the expected level by random chance.
     
    8. The composition of claim 7, wherein the block copolymer is as defined in any of claims 2 to 4 and 6.
     
    9. The composition of claim 7, comprising from 70 parts by weight to 95 parts by weight of the monovinylarene-conjugated diene block copolymer and from 5 parts by weight to 30 parts by weight of the polystyrene.
     
    10. The composition of claim 7, in the form of a film having a thickness of 0.5 mil to 3 mil and having been oriented at 90°C, wherein the composition has a shrinkage of at least 40% at 100°C and a natural shrinkage less than 5% after 7 days; or in the form of a film having a thickness of 0.5 mil to 3 mil and having been oriented at 90°C, wherein the composition has a haze of less than 10%.
     
    11. A method of shrink-wrapping an object or a group of objects, comprising:

    wrapping the object or the group of objects with a film comprising(a) from 50 parts by weight to 95 parts by weight of a monovinylarene-conjugated diene block copolymer comprising a proximal conjugated diene block containing from 5 phm conjugated diene units to 50 phm conjugated diene units; and a plurality of monovinylarene-conjugated diene mixed tapered blocks, wherein each mixed tapered block contains conjugated diene units and monovinylarene units in a weight ratio of 0.05 to 0.33; and (b) from 5 parts by weight to 50 parts by weight of a polystyrene; wherein the monovinylarene-conjugated diene block copolymer and the polystyrene total 100 parts by weight, to yield a wrapped object or group of objects, and

    heating the wrapped object or group of objects to a temperature and for a duration sufficient to shrink the film in at least a first direction, to yield a shrink-wrapped object or group of objects;

    wherein the block copolymer is formed through a charge order selected from the group consisting of i-C-C-i-C-B-CA, i-C-C-C-i-CC- B-CA, i-A-C-C-C-C-B-CA, i-A-i-C-C-C-C-B-CA, i-A-i-C-C-CC- C-B-CA, and i-A-C-C-i-C-C-B-CA, wherein i is a polymerization initiator charge, A is a monovinylarene charge, B is a conjugated diene charge, C is a monovinylarene and conjugated diene charge, and CA is a coupling agent;

    and wherein the mixed block is "tapered" when both (a) the mole fraction of conjugated diene units in a first section of the block is higher than the mole fraction of conjugated diene units in a second section of the block, wherein the second section of the block is closer to a given end of the block, and (b) that condition (a) is true for all sections of the block, with the proviso that, depending on the size of the sections being considered, condition (a) is not true for all sections of the block at no more than the expected level by random chance.


     
    12. A shrink film, comprising:

    a monovinylarene-conjugated diene block copolymer, comprising: (1) a proximal conjugated diene block containing from 5 phm conjugated diene units to 50 phm conjugated diene units; and (2) a plurality of monovinylarene-conjugated diene mixed tapered blocks,

    wherein each monovinylarene-conjugated diene mixed tapered block contains conjugated diene units and monovinylarene units with a weight ratio of conjugated diene units to monovinylarene units of 0.05 to 0.33, wherein a film having a thickness of 0.5 mil to 3 mil and having been oriented at 90°C, wherein the film has a shrinkage of at least 40% at 100°C, a haze of less than 10%, and a natural shrinkage less than 6% after 3 days;

    wherein the block copolymer is formed through a charge order selected from the group consisting of i-C-C-i-C-B-CA, i-C-C-C-i-CC- B-CA, i-A-C-C-C-C-B-CA, i-A-i-C-C-C-C-B-CA, i-A-i-C-C-CC- C-B-CA, and i-A-C-C-i-C-C-B-CA, wherein i is a polymerization initiator charge, A is a monovinylarene charge, B is a conjugated diene charge, C is a monovinylarene and conjugated diene charge, and CA is a coupling agent;

    and wherein the mixed block is "tapered" when both (a) the mole fraction of conjugated diene units in a first section of the block is higher than the mole fraction of conjugated diene units in a second section of the block, wherein the second section of the block is closer to a given end of the block, and (b) that condition (a) is true for all sections of the block, with the proviso that, depending on the size of the sections being considered, condition (a) is not true for all sections of the block at no more than the expected level by random chance.


     
    13. The shrink film of claim 12, further comprising from 5 parts by weight to 50 parts by weight of a polystyrene; wherein the monovinylarene-conjugated diene block copolymer and the polystyrene total 100 parts by weight.
     
    14. The shrink film of claim 12, formed into a shrink label.
     


    Ansprüche

    1. Blockcopolymer aus Monovinylaren und konjugiertem Dien, umfassend:

    einen proximalen Block aus konjugiertem Dien, der 5 phm Einheiten aus konjugiertem Dien bis 50 phm Einheiten aus konjugiertem Dien umfasst; und mehrere gemischte gradientenartig aufgebaute Blöcke aus Monovinylaren und konjugiertem Dien,

    wobei jeder gemischte gradientenartig aufgebaute Block aus Monovinylaren und konjugiertem Dien Einheiten von konjugiertem Dien und Monovinylaren-Einheiten mit einem Gewichtsverhältnis von Einheiten von konjugiertem Dien zu Monovinylaren-Einheiten von 0,05 bis 0,33 enthält;

    wobei das Blockcopolymer durch eine Chargenreihenfolge aus der Gruppe bestehend aus i-C-C-i-C-B-CA, i-C-C-C-i-CC-B-CA, i-A-C-C-C-C-B-CA, i-A-i-C-C-C-C-B-CA, i-A-i-C-C-C-C-C-B-CA und i-A-C-C-i-C-C-B-CA gebildet ist, wobei i eine Polymerisationsinitiatorcharge ist, A eine Monovinylaren-Charge ist, B eine Charge von konjugiertem Dien ist, C eine Charge von Monovinylaren und konjugiertem Dien ist und CA ein Kupplungsmittel ist;

    und wobei der gemischte Block "gradientenartig aufgebaut" ist, wenn sowohl (a) der Molenbruch von Einheiten von konjugiertem Dien in einem ersten Abschnitt des Blocks höher ist als der Molenbruch von Einheiten von konjugiertem Dien in einem zweiten Abschnitt des Blocks, wobei sich der zweite Abschnitt des Blocks näher an einem gegebenen Ende des Blocks befindet, als auch (b) diese Bedingung (a) auf alle Abschnitte des Blocks zutrifft, mit der Maßgabe, dass Bedingung (a) je nach der Größe der betrachteten Abschnitte für alle Abschnitte des Blocks zu nicht mehr als dem statistisch erwarteten Grad nicht wahr ist.


     
    2. Blockcopolymer aus Monovinylaren und konjugiertem Dien nach Anspruch 1, wobei das Gewichtsverhältnis von Einheiten von konjugiertem Dien zu Monovinylaren-Einheiten in jedem gemischten gradientenartig aufgebauten Block 0,06 bis 0,28, insbesondere 0,08 bis 0,26, beträgt.
     
    3. Blockcopolymer aus Monovinylaren und konjugiertem Dien nach Anspruch 1, wobei das Blockcopolymer mindestens drei gemischte gradientenartig aufgebaute Blöcke aus Monovinylaren und konjugiertem Dien, insbesondere mindestens vier aufeinanderfolgende gemischte gradientenartig aufgebaute Blöcke aus Monovinylaren und konjugiertem Dien, umfasst.
     
    4. Blockcopolymer aus Monovinylaren und konjugiertem Dien nach Anspruch 1, ferner umfassend einen distalen Monovinylaren-Block, der 10 phm Monovinylaren-Einheiten bis 40 phm Monovinylaren-Einheiten enthält.
     
    5. Blockcopolymer aus Monovinylaren und konjugiertem Dien nach Anspruch 1 in Form einer Folie, die eine Dicke von 0,5 mil bis 3 mil aufweist und bei 90 °C orientiert worden ist, wobei das Blockcopolymer einen Schrumpf von mindestens 40 % bei 100 °C und einen natürlichen Schrumpf von weniger als 10 % nach 7 Tagen aufweist; oder in Form einer Folie, die eine Dicke von 0,5 mil bis 3 mil aufweist und bei 90 °C orientiert worden ist, wobei das Blockcopolymer eine Trübung von weniger als 10 % aufweist.
     
    6. Blockcopolymer aus Monovinylaren und konjugiertem Dien nach Anspruch 1, ferner umfassend ein kautschukmodifiziertes Polystyrol.
     
    7. Zusammensetzung, umfassend

    (a) 50 Gewichtsteile bis 95 Gewichtsteile eines Blockcopolymers aus Monovinylaren und konjugiertem Dien, umfassend einen proximalen Block aus konjugiertem Dien, der 5 phm Einheiten aus konjugiertem Dien bis 50 phm Einheiten aus konjugiertem Dien umfasst; und mehrere gemischte gradientenartig aufgebaute Blöcke aus Monovinylaren und konjugiertem Dien, wobei jeder gemischte gradientenartig aufgebaute Block Einheiten von konjugiertem Dien und Monovinylaren-Einheiten mit einem Gewichtsverhältnis von Einheiten von konjugiertem Dien zu Monovinylaren-Einheiten von 0,05 bis 0,33 enthält; und

    (b) 5 Gewichtsteile bis 50 Gewichtsteile eines Polystyrols; wobei sich das Blockcopolymer aus Monovinylaren und konjugiertem Dien und das Polystyrol zu 100 Gewichtsteilen summieren;

    wobei das Blockcopolymer durch eine Chargenreihenfolge aus der Gruppe bestehend aus i-C-C-i-C-B-CA, i-C-C-C-i-CC-B-CA, i-A-C-C-C-C-B-CA, i-A-i-C-C-C-C-B-CA, i-A-i-C-C-CC-C-B-CA und i-A-C-C-i-C-C-B-CA gebildet ist, wobei i eine Polymerisationsinitiatorcharge ist, A eine Monovinylaren-Charge ist, B eine Charge von konjugiertem Dien ist, C eine Charge von Monovinylaren und konjugiertem Dien ist und CA ein Kupplungsmittel ist; und wobei der gemischte Block "gradientenartig aufgebaut" ist, wenn sowohl (a) der Molenbruch von Einheiten von konjugiertem Dien in einem ersten Abschnitt des Blocks höher ist als der Molenbruch von Einheiten von konjugiertem Dien in einem zweiten Abschnitt des Blocks, wobei sich der zweite Abschnitt des Blocks näher an einem gegebenen Ende des Blocks befindet, als auch (b) diese Bedingung (a) auf alle Abschnitte des Blocks zutrifft, mit der Maßgabe, dass Bedingung (a) je nach der Größe der betrachteten Abschnitte für alle Abschnitte des Blocks zu nicht mehr als dem statistisch erwarteten Grad nicht wahr ist.
     
    8. Zusammensetzung nach Anspruch 7, wobei das Blockcopolymer wie in einem der Ansprüche 2 bis 4 und 6 definiert ist.
     
    9. Zusammensetzung nach Anspruch 7, umfassend 70 Gewichtsteile bis 95 Gewichtsteile des Blockcopolymers aus Monovinylaren und konjugiertem Dien und 5 Gewichtsteile bis 30 Gewichtsteile des Polystyrols.
     
    10. Zusammensetzung nach Anspruch 7 in Form einer Folie, die eine Dicke von 0,5 mil bis 3 mil aufweist und bei 90 °C orientiert worden ist, wobei die Zusammensetzung einen Schrumpf von mindestens 40 % bei 100 °C und einen natürlichen Schrumpf von weniger als 5 % nach 7 Tagen aufweist; oder in Form einer Folie, die eine Dicke von 0,5 mil bis 3 mil aufweist und bei 90 °C orientiert worden ist, wobei die Zusammensetzung eine Trübung von weniger als 10 % aufweist.
     
    11. Verfahren zum Schrumpfverpacken eines Objekts oder einer Gruppe von Objekten, umfassend:

    Umwickeln des Objekts bzw. der Gruppe von Objekten mit einer Folie, umfassend (a) 50 Gewichtsteile bis 95 Gewichtsteile eines Blockcopolymers aus Monovinylaren und konjugiertem Dien, umfassend einen proximalen Block aus konjugiertem Dien, der 5 phm Einheiten aus konjugiertem Dien bis 50 phm Einheiten aus konjugiertem Dien umfasst; und

    mehrere gemischte gradientenartig aufgebaute Blöcke aus Monovinylaren und konjugiertem Dien, wobei jeder gemischte gradientenartig aufgebaute Block Einheiten von konjugiertem Dien und Monovinylaren-Einheiten mit einem Gewichtsverhältnis von 0,05 bis 0,33 enthält; und (b) 5 Gewichtsteile bis 50 Gewichtsteile eines Polystyrols; wobei sich das Blockcopolymer aus Monovinylaren und konjugiertem Dien und das Polystyrol zu 100 Gew.-% summieren, was ein umwickeltes Objekt bzw. eine umwickelte Gruppe von Objekten ergibt, und

    Erhitzen des umwickelten Objekts bzw. der Gruppe von Objekten auf eine Temperatur und über einen Zeitraum, die ausreichen, um die Folie in wenigstens einer ersten Richtung zum Schrumpfen zu bringen, was ein schrumpfverpacktes Objekt bzw. eine schrumpfverpackte Gruppe von Objekten ergibt;

    wobei das Blockcopolymer durch eine Chargenreihenfolge aus der Gruppe bestehend aus i-C-C-i-C-B-CA, i-C-C-C-i-CC-B-CA, i-A-C-C-C-C-B-CA, i-A-i-C-C-C-C-B-CA, i-A-i-C-C-CC-C-B-CA und i-A-C-C-i-C-C-B-CA gebildet ist, wobei i eine Polymerisationsinitiatorcharge ist, A eine Monovinylaren-Charge ist, B eine Charge von konjugiertem Dien ist, C eine Charge von Monovinylaren und konjugiertem Dien ist und CA ein Kupplungsmittel ist;

    und wobei der gemischte Block "gradientenartig aufgebaut" ist, wenn sowohl (a) der Molenbruch von Einheiten von konjugiertem Dien in einem ersten Abschnitt des Blocks höher ist als der Molenbruch von Einheiten von konjugiertem Dien in einem zweiten Abschnitt des Blocks, wobei sich der zweite Abschnitt des Blocks näher an einem gegebenen Ende des Blocks befindet, als auch (b) diese Bedingung (a) auf alle Abschnitte des Blocks zutrifft, mit der Maßgabe, dass Bedingung (a) je nach der Größe der betrachteten Abschnitte für alle Abschnitte des Blocks zu nicht mehr als dem statistisch erwarteten Grad nicht wahr ist.


     
    12. Schrumpffolie, umfassend:

    Blockcopolymer aus Monovinylaren und konjugiertem Dien, umfassend: (1) einen proximalen Block aus konjugiertem Dien, der 5 phm Einheiten aus konjugiertem Dien bis 50 phm Einheiten aus konjugiertem Dien umfasst; und (2) mehrere gemischte gradientenartig aufgebaute Blöcke aus Monovinylaren und konjugiertem Dien,

    wobei jeder gemischte gradientenartig aufgebaute Block aus Monovinylaren und konjugiertem Dien Einheiten von konjugiertem Dien und Monovinylaren-Einheiten mit einem Gewichtsverhältnis von Einheiten von konjugiertem Dien zu Monovinylaren-Einheiten von 0,05 bis 0,33 enthält, wobei eine Folie, die eine Dicke von 0,5 mil bis 3 mil aufweist und bei 90 °C orientiert worden ist, wobei die Folie einen Schrumpf von mindestens 40 % bei 100 °C, eine Trübung von weniger als 10 % und einen natürlichen Schrumpf von weniger als 6 % nach 3 Tagen aufweist;

    wobei das Blockcopolymer durch eine Chargenreihenfolge aus der Gruppe bestehend aus i-C-C-i-C-B-CA, i-C-C-C-i-CC-B-CA, i-A-C-C-C-C-B-CA, i-A-i-C-C-C-C-B-CA, i-A-i-C-C-CC-C-B-CA und i-A-C-C-i-C-C-B-CA gebildet ist, wobei i eine Polymerisationsinitiatorcharge ist, A eine Monovinylaren-Charge ist, B eine Charge von konjugiertem Dien ist, C eine Charge von Monovinylaren und konjugiertem Dien ist und CA ein Kupplungsmittel ist;

    und wobei der gemischte Block "gradientenartig aufgebaut" ist, wenn sowohl (a) der Molenbruch von Einheiten von konjugiertem Dien in einem ersten Abschnitt des Blocks höher ist als der Molenbruch von Einheiten von konjugiertem Dien in einem zweiten Abschnitt des Blocks, wobei sich der zweite Abschnitt des Blocks näher an einem gegebenen Ende des Blocks befindet, als auch (b) diese Bedingung (a) auf alle Abschnitte des Blocks zutrifft, mit der Maßgabe, dass Bedingung (a) je nach der Größe der betrachteten Abschnitte für alle Abschnitte des Blocks zu nicht mehr als dem statistisch erwarteten Grad nicht wahr ist.


     
    13. Schrumpffolie nach Anspruch 12, ferner umfassend 5 Gewichtsteile bis 50 Gewichtsteile eines Polystyrols; wobei sich das Blockcopolymer aus Monovinylaren und konjugiertem Dien und das Polystyrol zu 100 Gewichtsteilen summieren.
     
    14. Schrumpffolie nach Anspruch 12, die als Schrumpfetikett ausgebildet ist.
     


    Revendications

    1. Copolymère à blocs de monovinylarène et de diène conjugué, comprenant :

    un bloc diène conjugué proximal comprenant de 5 pcm d'unités diène conjugué à 50 pcm d'unités diène conjugué ; et une pluralité de blocs mixtes de monovinylarène et de diène conjugué à gradient de composition,

    dans lequel chaque bloc mixte de monovinylarène et de diène conjugué à gradient de composition contient des unités diène conjugué et des unités monovinylarène selon un rapport pondéral des unités diène conjugué contre les unités monovinylarène de 0,05 à 0,33 ;

    le copolymère à blocs étant formé selon un ordre de charge sélectionné dans le groupe constitué de i-C-C-i-C-B-CA, i-C-C-C-i-CC-B-CA, i-A-C-C-C-C-B-CA, i-A-i-CC-C-C-B-CA, i-A-i-C-C-C-C-C-B-CA, et i-A-C-C-i-C-C-B-CA, où i est une charge d'initiateur de polymérisation, A est une charge de monovinylarène, B est une charge de diène conjugué, C est une charge de monovinylarène et de diène conjugué, et CA est un agent de couplage ;

    et dans lequel le bloc mixte est « à gradient de composition » quand (a) la fraction molaire des unités diène conjugué dans une première section du bloc est supérieure à la fraction molaire des unités diène conjugué dans une deuxième section du bloc, la deuxième section du bloc étant plus proche d'une extrémité donnée du bloc, et aussi (b) la condition (a) est vraie pour toutes les sections du bloc, sous réserve que, selon la taille des sections considérées, la condition (a) ne soit pas vraie pour toutes les sections du bloc à un niveau supérieur au niveau auquel on s'attendrait dans des conditions aléatoires.


     
    2. Copolymère à blocs de monovinylarène et de diène conjugué selon la revendication 1, dans lequel le rapport pondéral des unités diène conjugué contre les unités monovinylarène dans chaque bloc mixte à gradient de composition est de 0,06 à 0,28, en particulier de 0,08 à 0,26.
     
    3. Copolymère à blocs de monovinylarène et de diène conjugué selon la revendication 1, le copolymère à blocs comprenant au moins trois blocs mixtes de monovinylarène et de diène conjugué à gradient de composition, en particulier au moins quatre blocs mixtes consécutifs de monovinylarène et de diène conjugué à gradient de composition.
     
    4. Copolymère à blocs de monovinylarène et de diène conjugué selon la revendication 1, comprenant en outre un bloc monovinylarène distal contenant de 10 pcm d'unités monovinylarène à 40 pcm d'unités monovinylarène.
     
    5. Copolymère à blocs de monovinylarène et de diène conjugué selon la revendication 1, sous la forme d'un film ayant une épaisseur de 0,5 millième de pouce à 3 millièmes de pouce et ayant été orienté à 90 °C, le copolymère à blocs ayant un retrait d'au moins 40 % à 100 °C et un retrait naturel inférieur à 10 % après 7 jours ; ou sous la forme d'un film ayant une épaisseur de 0,5 millième de pouce à 3 millièmes de pouce et ayant été orienté à 90 °C, le copolymère à blocs ayant un voile inférieur à 10 %.
     
    6. Copolymère à blocs de monovinylarène et de diène conjugué selon la revendication 1, comprenant en outre un polystyrène modifié par caoutchouc.
     
    7. Composition, comprenant :

    (a) de 50 parties en poids à 95 parties du poids d'un copolymère à blocs de monovinylarène et de diène conjugué comprenant un bloc diène conjugué proximal contenant de 5 pcm d'unités diène conjugué à 50 pcm d'unités diène conjugué ; et une pluralité de blocs mixtes de monovinylarène et de diène conjugué à gradient de composition, chaque bloc mixte à gradient de composition contenant des unités diène conjugué et des unités monovinylarène selon un rapport pondéral des unités diène conjugué contre les unités monovinylarène de 0,05 à 0,33 ; et

    (b) de 5 parties en poids à 50 parties du poids d'un polystyrène ; le copolymère à blocs de monovinylarène et de diène conjugué et le polystyrène représentant au total 100 parties en poids,

    le copolymère à blocs étant formé selon un ordre de charge sélectionné dans le groupe constitué de i-C-C-i-C-B-CA, i-C-C-C-i-CC- B-CA, i-A-C-C-C-C-B-CA, i-Ai-CC-C-C-B-CA, i-A-i-C-C-CC- C-B-CA, et i-A-C-C-i-C-C-B-CA, où i est une charge d'initiateur de polymérisation, A est une charge de monovinylarène, B est une charge de diène conjugué, C est une charge de monovinylarène et de diène conjugué, et CA est un agent de couplage ;
    et dans lequel le bloc mixte est « à gradient de composition » quand (a) la fraction molaire des unités diène conjugué dans une première section du bloc est supérieure à la fraction molaire des unités diène conjugué dans une deuxième section du bloc, la deuxième section du bloc étant plus proche d'une extrémité donnée du bloc, et aussi (b) la condition (a) est vraie pour toutes les sections du bloc, sous réserve que, selon la taille des sections considérées, la condition (a) ne soit pas vraie pour toutes les sections du bloc à un niveau supérieur au niveau auquel on s'attendrait dans des conditions aléatoires.
     
    8. Composition selon la revendication 7, dans laquelle le copolymère à blocs est tel que défini dans l'une quelconque des revendications 2 à 4 et 6.
     
    9. Composition selon la revendication 7, comprenant de 70 parties en poids à 95 parties du poids du copolymère à blocs de monovinylarène et de diène conjugué et de 5 parties en poids à 30 parties du poids du polystyrène.
     
    10. Composition selon la revendication 7, sous la forme d'un film ayant une épaisseur de 0,5 millième de pouce à 3 millièmes de pouce et ayant été orienté à 90 °C, la composition ayant un retrait d'au moins 40 % à 100 °C et un retrait naturel inférieur à 5 % après 7 jours ; ou sous la forme d'un film ayant une épaisseur de 0,5 millième de pouce à 3 millièmes de pouce et ayant été orienté à 90 °C, la composition ayant un voile inférieur à 10 %.
     
    11. Procédé d'emballage par rétraction d'un objet ou d'un groupe d'objets, comprenant :

    l'enveloppement de l'objet ou du groupe d'objets avec un film comprenant (a) de 50 parties en poids à 95 parties du poids d'un copolymère à blocs de monovinylarène et de diène conjugué comprenant un bloc diène conjugué proximal contenant de 5 pcm d'unités diène conjugué à 50 pcm d'unités diène conjugué ; et une pluralité de blocs mixtes de monovinylarène et de diène conjugué à gradient de composition, chaque bloc mixte à gradient de composition contenant des unités diène conjugué et des unités monovinylarène selon un rapport pondéral de 0,05 à 0,33 ; et (b) de 5 parties en poids à 50 parties en poids d'un polystyrène ; le copolymère à blocs de monovinylarène et de diène conjugué et le polystyrène représentant au total 100 parties en poids, pour produire un objet ou un groupe d'objets enveloppé, et

    le chauffage de l'objet ou du groupe d'objets enveloppé à une température suffisante et pendant suffisamment de temps pour provoquer un retrait du film dans au moins une première direction, afin de produire un objet ou un groupe d'objets emballé par rétraction ;

    le copolymère à blocs étant formé selon un ordre de charge sélectionné dans le groupe constitué de i-C-C-i-C-B-CA, i-C-C-C-i-CC- B-CA, i-A-C-C-C-C-B-CA, i-Ai-CC-C-C-B-CA, i-A-i-C-C-CC- C-B-CA, et i-A-C-C-i-C-C-B-CA, où i est une charge d'initiateur de polymérisation, A est une charge de monovinylarène, B est une charge de diène conjugué, C est une charge de monovinylarène et de diène conjugué, et CA est un agent de couplage ;

    et dans lequel le bloc mixte est « à gradient de composition » quand (a) la fraction molaire des unités diène conjugué dans une première section du bloc est supérieure à la fraction molaire des unités diène conjugué dans une deuxième section du bloc, la deuxième section du bloc étant plus proche d'une extrémité donnée du bloc, et aussi (b) la condition (a) est vraie pour toutes les sections du bloc, sous réserve que, selon la taille des sections considérées, la condition (a) ne soit pas vraie pour toutes les sections du bloc à un niveau supérieur au niveau auquel on s'attendrait dans des conditions aléatoires.


     
    12. Film rétractable, comprenant :

    un copolymère à blocs de monovinylarène et de diène conjugué, comprenant : (1) un bloc diène conjugué proximal contenant de 5 pcm d'unités diène conjugué à 50 pcm d'unités diène conjugué ; et (2) une pluralité de blocs mixtes de monovinylarène et de diène conjugué à gradient de composition,

    dans lequel chaque bloc mixte de monovinylarène et de diène conjugué à gradient de composition contient des unités diène conjugué et des unités monovinylarène selon un rapport pondéral des unités diène conjugué contre les unités monovinylarène de 0,05 à 0,33, un film ayant une épaisseur de 0,5 millième de pouce à 3 millièmes de pouce et ayant été orienté à 90 °C, le film ayant un retrait d'au moins 40 % à 100 °C, un voile inférieur à 10 %, et un retrait naturel inférieur à 6 % après 3 jours ;

    le copolymère à blocs étant formé selon un ordre de charge sélectionné dans le groupe constitué de i-C-C-i-C-B-CA, i-C-C-C-i-CC- B-CA, i-A-C-C-C-C-B-CA, i-Ai-CC-C-C-B-CA, i-A-i-C-C-CC- C-B-CA, et i-A-C-C-i-C-C-B-CA, où i est une charge d'initiateur de polymérisation, A est une charge de monovinylarène, B est une charge de diène conjugué, C est une charge de monovinylarène et de diène conjugué, et CA est un agent de couplage ;

    et dans lequel le bloc mixte est « à gradient de composition » quand (a) la fraction molaire des unités diène conjugué dans une première section du bloc est supérieure à la fraction molaire des unités diène conjugué dans une deuxième section du bloc, la deuxième section du bloc étant plus proche d'une extrémité donnée du bloc, et aussi (b) la condition (a) est vraie pour toutes les sections du bloc, sous réserve que, selon la taille des sections considérées, la condition (a) ne soit pas vraie pour toutes les sections du bloc à un niveau supérieur au niveau auquel on s'attendrait dans des conditions aléatoires.


     
    13. Film rétractable selon la revendication 12, comprenant en outre de 5 parties en poids à 50 parties du poids d'un polystyrène ; le copolymère à blocs de monovinylarène et de diène conjugué et le polystyrène représentant au total 100 parties en poids.
     
    14. Film rétractable selon la revendication 12, formé de façon à produire une étiquette rétractable.
     






    Cited references

    REFERENCES CITED IN THE DESCRIPTION



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    Patent documents cited in the description